Numerical Analysis of the Effect of Different Internal Structures on Gas-Liquid Cylindrical Cyclone Vortices and Velocities

This research uses numerical simulations to analyze the vortices and velocities inside gas-liquid separators of various shapes in order to investigate their separation. The gas-liquid flow inside the separator is simulated using the Eulerian and RNG k-ε models, which also provide iso-vorticity surfa...

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Main Authors: Ling Yu, Yi Li, Haigang Wang
Format: Article
Language:English
Published: Wiley 2024-01-01
Series:International Journal of Chemical Engineering
Online Access:http://dx.doi.org/10.1155/2024/7812685
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author Ling Yu
Yi Li
Haigang Wang
author_facet Ling Yu
Yi Li
Haigang Wang
author_sort Ling Yu
collection DOAJ
description This research uses numerical simulations to analyze the vortices and velocities inside gas-liquid separators of various shapes in order to investigate their separation. The gas-liquid flow inside the separator is simulated using the Eulerian and RNG k-ε models, which also provide iso-vorticity surfaces based on the Ω approach. The findings indicate that more powerful turbulence effects are caused by larger vortex surfaces, such as mixed structure (CS) separators, more vortex volume, and a substantially higher density of vortex nuclei. The liquid film extraction structure (LFES) separator has a larger tangential velocity at high cross sections, which is favorable for reducing film build-up. Because of its high positive radial velocity, the filter structure (FS) separator helps to lessen droplet carryover. At high cross sections, the tangential velocity of the LFES separator is higher, which is advantageous for lowering droplet carryover. The pressure and phase volume fraction distributions are consistent with the results of the vorticity and velocity analyses. When comparing the liquid separation efficiencies of separators with various designs, the FS separator outperforms the LFES separator, with the CS separator having the best efficiency. The study’s conclusions offer guidance for the separator’s structural modifications and industrial uses.
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institution Kabale University
issn 1687-8078
language English
publishDate 2024-01-01
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spelling doaj-art-6568f2bc0c0942dbaa52bd7e1a8441da2025-08-20T03:34:36ZengWileyInternational Journal of Chemical Engineering1687-80782024-01-01202410.1155/2024/7812685Numerical Analysis of the Effect of Different Internal Structures on Gas-Liquid Cylindrical Cyclone Vortices and VelocitiesLing Yu0Yi Li1Haigang Wang2Tsinghua Shenzhen International Graduate SchoolTsinghua Shenzhen International Graduate SchoolChinese Academy of SciencesThis research uses numerical simulations to analyze the vortices and velocities inside gas-liquid separators of various shapes in order to investigate their separation. The gas-liquid flow inside the separator is simulated using the Eulerian and RNG k-ε models, which also provide iso-vorticity surfaces based on the Ω approach. The findings indicate that more powerful turbulence effects are caused by larger vortex surfaces, such as mixed structure (CS) separators, more vortex volume, and a substantially higher density of vortex nuclei. The liquid film extraction structure (LFES) separator has a larger tangential velocity at high cross sections, which is favorable for reducing film build-up. Because of its high positive radial velocity, the filter structure (FS) separator helps to lessen droplet carryover. At high cross sections, the tangential velocity of the LFES separator is higher, which is advantageous for lowering droplet carryover. The pressure and phase volume fraction distributions are consistent with the results of the vorticity and velocity analyses. When comparing the liquid separation efficiencies of separators with various designs, the FS separator outperforms the LFES separator, with the CS separator having the best efficiency. The study’s conclusions offer guidance for the separator’s structural modifications and industrial uses.http://dx.doi.org/10.1155/2024/7812685
spellingShingle Ling Yu
Yi Li
Haigang Wang
Numerical Analysis of the Effect of Different Internal Structures on Gas-Liquid Cylindrical Cyclone Vortices and Velocities
International Journal of Chemical Engineering
title Numerical Analysis of the Effect of Different Internal Structures on Gas-Liquid Cylindrical Cyclone Vortices and Velocities
title_full Numerical Analysis of the Effect of Different Internal Structures on Gas-Liquid Cylindrical Cyclone Vortices and Velocities
title_fullStr Numerical Analysis of the Effect of Different Internal Structures on Gas-Liquid Cylindrical Cyclone Vortices and Velocities
title_full_unstemmed Numerical Analysis of the Effect of Different Internal Structures on Gas-Liquid Cylindrical Cyclone Vortices and Velocities
title_short Numerical Analysis of the Effect of Different Internal Structures on Gas-Liquid Cylindrical Cyclone Vortices and Velocities
title_sort numerical analysis of the effect of different internal structures on gas liquid cylindrical cyclone vortices and velocities
url http://dx.doi.org/10.1155/2024/7812685
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AT yili numericalanalysisoftheeffectofdifferentinternalstructuresongasliquidcylindricalcyclonevorticesandvelocities
AT haigangwang numericalanalysisoftheeffectofdifferentinternalstructuresongasliquidcylindricalcyclonevorticesandvelocities